Fe-S dually modulated adsorbate evolution and lattice oxygen compatible mechanism for water oxidation

Двойная модуляция Fe и S: совместимый механизм эволюции адсорбата и окисления кристаллического кислорода для окисления воды
Xin Tan, Shichun Mu, Xu Luo, Hongyu Zhao, Lin Sheng, Kesong Yu, Xueqin Mu, Zhenhua Tao, Pengxia Ji
2024-09-27

Fe and S dually modulated NiFe oxyhydroxideOER overpotential (251 ± 5 / 291 ± 1 mV at 100/500 mA cm^-2)adsorbate evolution mechanismin situ spectroscopy and mass spectrometrylattice oxygen oxidation mechanism
Simultaneously activating metal and lattice oxygen sites to construct a compatible multi-mechanism catalysis is expected for the oxygen evolution reaction (OER) by providing highly available active sites and mediate catalytic activity/stability, but significant challenges remain. Herein, Fe and S dually modulated NiFe oxyhydroxide (R-NiFeOOH@SO4) is conceived by complete reconstruction of NiMoO4·xH2O@Fe,S during OER, and achieves compatible adsorbate evolution mechanism and lattice oxygen oxidation mechanism with simultaneously optimized metal/oxygen sites, as substantiated by in situ spectroscopy/mass spectrometry and chemical probe. Further theoretical analyses reveal that Fe promotes the OER kinetics under adsorbate evolution mechanism, while S excites the lattice oxygen activity under lattice oxygen oxidation mechanism, featuring upshifted O 2p band centers, enlarged d-d Coulomb interaction, weakened metal-oxygen bond and optimized intermediate adsorption free energy. Benefiting from the compatible multi-mechanism, R-NiFeOOH@SO4 only requires overpotentials of 251 ± 5/291 ± 1 mV to drive current densities of 100/500 mA cm−2 in alkaline media, with robust stability for over 300 h. This work provides insights in understanding the OER mechanism to better design high-performance OER catalysts. The oxygen evolution reaction is crucial for energy conversion but faces challenges in catalyst optimization. Here, the authors present a dual-modulated NiFe oxyhydroxide (R-NiFeOOH@SO4) that enhances OER performance through optimized metal and lattice oxygen sites, achieving a compatible multi-mechanism.
1
A Fe and S dually modulated NiFe oxyhydroxide (R-NiFeOOH@SO4) catalyst was produced by complete reconstruction of NiMoO4·xH2O@Fe,S during OER.
2
R-NiFeOOH@SO4 achieves a compatible adsorbate evolution mechanism and lattice oxygen oxidation mechanism with simultaneously optimized metal and oxygen active sites, evidenced by in situ spectroscopy, mass spectrometry, and chemical probes.
3
R-NiFeOOH@SO4 delivers low overpotentials of 251 ± 5 mV and 291 ± 1 mV to drive 100 and 500 mA cm^-2 respectively in alkaline media, and demonstrates robust stability exceeding 300 hours.
4
The compatible multi-mechanism design (dual modulation of Fe and S) provides a pathway to simultaneously improve OER activity and stability through cooperative metal/oxygen site optimization.
5
Theoretical analysis shows Fe enhances OER kinetics via the adsorbate evolution mechanism, while S activates lattice oxygen via upshifted O 2p band centers, enlarged d–d Coulomb interaction, weakened metal–oxygen bonds, and optimized intermediate adsorption free energies.

Fe and S dually modulated NiFe oxyhydroxide catalyst (R-NiFeOOH@SO4) reconstructed from NiMoO4·xH2O@Fe,S during OER

Compatible dual OER mechanisms: adsorbate evolution on metal sites and lattice oxygen oxidation on oxygen sites, and their modulation by Fe (promoting adsorbate-evolution kinetics) and S (activating lattice oxygen) affecting electronic structure, metal–oxygen bonding, intermediate adsorption energetics, activity (overpotential at 100/500 mA cm^-2) and stability

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Publication Date
2024-09-27
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Authors
Xin Tan
Shichun Mu
Xu Luo
Hongyu Zhao
Lin Sheng
Kesong Yu
Xueqin Mu
Zhenhua Tao
Pengxia Ji
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